Literature DB >> 26702635

Thermoresponsive amperometric glucose biosensor.

Piyanut Pinyou1, Adrian Ruff1, Sascha Pöller1, Stefan Barwe1, Michaela Nebel1, Natalia Guerrero Alburquerque2, Erik Wischerhoff2, André Laschewsky3, Sebastian Schmaderer4, Jan Szeponik4, Nicolas Plumeré5, Wolfgang Schuhmann1.   

Abstract

The authors report on the fabrication of a thermoresponsive biosensor for the amperometric detection of glucose. Screen printed electrodes with heatable gold working electrodes were modified by a thermoresponsive statistical copolymer [polymer I: poly(ω-ethoxytriethylenglycol methacrylate-co-3-(N,N-dimethyl-N-2-methacryloyloxyethyl ammonio) propanesulfonate-co-ω-butoxydiethylenglycol methacrylate-co-2-(4-benzoyl-phenoxy)ethyl methacrylate)] with a lower critical solution temperature of around 28 °C in aqueous solution via electrochemically induced codeposition with a pH-responsive redox-polymer [polymer II: poly(glycidyl methacrylate-co-allyl methacrylate-co-poly(ethylene glycol)methacrylate-co-butyl acrylate-co-2-(dimethylamino)ethyl methacrylate)-[Os(bpy)2(4-(((2-(2-(2-aminoethoxy)ethoxy)ethyl)amino)methyl)-N,N-dimethylpicolinamide)](2+)] and pyrroloquinoline quinone-soluble glucose dehydrogenase acting as biological recognition element. Polymer II bears covalently bound Os-complexes that act as redox mediators for shuttling electrons between the enzyme and the electrode surface. Polymer I acts as a temperature triggered immobilization matrix. Probing the catalytic current as a function of the working electrode temperature shows that the activity of the biosensor is dramatically reduced above the phase transition temperature of polymer I. Thus, the local modulation of the temperature at the interphase between the electrode and the bioactive layer allows switching the biosensor from an on- to an off-state without heating of the surrounding analyte solution.

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Year:  2015        PMID: 26702635     DOI: 10.1116/1.4938382

Source DB:  PubMed          Journal:  Biointerphases        ISSN: 1559-4106            Impact factor:   2.456


  1 in total

1.  Scanning Electrochemical Microscopy of Electrically Heated Wire Substrates.

Authors:  Stefan Wert; Alexander Fußstetter; Christian Iffelsberger; Frank-Michael Matysik
Journal:  Molecules       Date:  2020-03-05       Impact factor: 4.411

  1 in total

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